通过 [1,2]- 芳基转变转换芳基萘并[2,1-b]呋喃的酸催化反应的区域选择性。

IF 2.9 3区 化学 Q1 CHEMISTRY, ORGANIC Organic & Biomolecular Chemistry Pub Date : 2024-08-28 DOI:10.1039/D4OB01223B
I. S. Mekeda, R. Yu. Balakhonov and V. Z. Shirinian
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引用次数: 0

摘要

利用[1,2]-芳基转移反应合成了萘并[2,1-b]呋喃,将其作为有机电子学的前景广阔的荧光支架。目标化合物是菲的呋喃类似物,通过将 CHCH 分子与氧原子进行同位取代而正式获得。这种直接而稳健的方法以[1,2]芳基转移为关键步骤,可轻松获得广泛的萘并[2,1-b]呋喃,并可进行后期官能化。通过[1,2]-芳基转变有效地转换了芳基萘并[2,1-b]呋喃的酸催化反应的区域选择性。研究人员开发了一种一锅反应方案,包括分子内缩合/[1,2]-芳基转变/分子间氧化芳香偶联的顺序反应,从而获得了 BINOL 的双萘并[2,1-b]呋喃类似物。这些化合物的优势在于其化学性质和光谱性能会因芳基取代基的性质和位置而发生很大的变化,从而有助于合成具有所需光谱特性的化合物,并为其在电子学、生物技术和有机合成领域的进一步应用开辟了前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Switching the regioselectivity of acid-catalyzed reactions of arylnaphtho[2,1-b]furans via a [1,2]-aryl shift†

The [1,2]-aryl shift reaction was used to synthesize naphtho[2,1-b]furans as promising fluorescent scaffolds for organic electronics. The target compounds are furan analogues of phenanthrene formally accessed by isosteric replacement of the CHCH moiety with an oxygen atom. The straightforward and robust approach involving a [1,2]-aryl shift as a key step provides easy access to a wide range of naphtho[2,1-b]furans with the possibility of late-stage functionalization. Efficient switching of the regioselectivity of acid-catalyzed reactions of arylnaphtho[2,1-b]furans via a [1,2]-aryl shift has been demonstrated. A one-pot protocol involving sequential intramolecular condensation/[1,2]-aryl shift/intermolecular oxidative aromatic coupling to provide access to binaphtho[2,1-b]furan analogues of BINOL was developed. The advantage of these compounds lies in the strong variation in chemical properties and spectral performance depending on the nature and position of the aryl substituent, which facilitates the synthesis of compounds with desired spectral characteristics and opens up prospects for their further use in electronics, biotechnologies and organic synthesis.

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来源期刊
Organic & Biomolecular Chemistry
Organic & Biomolecular Chemistry 化学-有机化学
CiteScore
5.50
自引率
9.40%
发文量
1056
审稿时长
1.3 months
期刊介绍: The international home of synthetic, physical and biomolecular organic chemistry.
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